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AD2S105 Scheda tecnica(PDF) 5 Page - Analog Devices

Il numero della parte AD2S105
Spiegazioni elettronici  Three-Phase Current Conditioner
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Produttore elettronici  AD [Analog Devices]
Homepage  http://www.analog.com
Logo AD - Analog Devices

AD2S105 Scheda tecnica(HTML) 5 Page - Analog Devices

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AD2S105
REV. 0
–5–
THEORY OF OPERATION
A fundamental requirement for high quality induction motor
drives is that the magnitude and position of the rotating air-gap
rotor flux be known. This is normally carried out by measuring
the rotor position via a position sensor and establishing a rotor
oriented reference frame.
To generate a flux component in the rotor, stator current is ap-
plied. A build-up of rotor flux is concluded which must be
maintained by controlling the stator current, ids, parallel to the
rotor flux. The rotor flux current component is the magnetizing
current, imr.
Torque is generated by applying a current component which is
perpendicular to the magnetizing current. This current is nor-
mally called the torque generating current, iqs.
To orient and control both the torque and flux stator current
vectors, a coordinate transformation is carried out to establish a
new reference frame related to the rotor. This complex calcula-
tion is carried out by the AD2S105.
To expand upon the vector operator a description of a single
vector rotation is of assistance. If it is considered that the
moduli of a vector is OP and that through the movement of ro-
tor position by
, we require the new position of this vector it
can be deduced as follows:
Let original vector OP = A (Cos
+ jSIN ) where A is a
constant;
if
OQ = OP e
j
(1)
and: e
j
= Cos
+ jSin
OQ = A (Cos ( + ) + jSin ( +
))
= A [Cos
Cos
φ – Sin Sin φ + jSin Cos φ + jCos Sin φ]
= A [(Cos
+ jSin ) (Cos
+ jSin
)]
(2)
θ
φ
θ + φ
Q
P
O
a
d
Figure 1. Vector Rotation in Polar Coordinate
The complex stator current vector can be represented as is = ias
+ aibs + a
2i
cs where a = e
j 2
π
3
and a
2 = e
j 4
π
3
. This can be re-
placed by rectangular coordinates as
is = ids + jiqs
(3)
In this equation ids and iqs represent the equivalent of a two-
phase stator winding which establishes the same magnitude of
MMF in a three-phase system. These inputs can be seen after
the three-phase to two-phase transformation in the AD2S105
block diagram. Equation (3) therefore represents a three-phase
to two-phase conversion.
To relate these stator current to the reference frame the rotor
currents assume the same rectangular coordinates, but are now
rotated by the operator e
j , where ej = Cos
+ jSin
.
Here the term vector rotator comes into play where the stator
current vector can be represented in rotor-based coordinates or
vice versa.
The AD2S105 uses e
j
as the core operator. In terms of the
mathematical function, it rotates the orthogonal ids and iqs com-
ponents as follows:
ids' + jiqs' = (Ids + jIqs) e
j
where ids', iqs' = stator currents in the rotor reference frame. And
e
j
= Cos
+ jSin
= (Ids + jIqs)(Cos
+ jSin
)
The output from the AD2S105 takes the form of:
ids' = Ids Cos
– Iqs Sin
iqs' = Ids Sin
+ Iqs Cos
The matrix equation is:
[ids' ] = [Cos – Sin ][Ids]
iqs'
Sin
Cos
Iqs
and it is shown in Figure 2.
I
ds
I
qs
I
ds'
I
qs'
φ
e
j
φ
Figure 2. AD2S105 Vector Rotation Operation
DIGITAL
φ
LATCH
3
φ TO 2φ
TRANSFORMATION
LATCH
LATCH
SINE AND
COSINE
MULTIPLIER
(DAC)
SINE AND
COSINE
MULTIPLIER
(DAC)
PARK
COS
θ COSθ + 120° COSθ + 240° SINθ
INPUT CLARK
COS (
θ + φ)
SIN (
θ + φ)
Figure 3. Converter Operation Diagram


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